Artificial intelligence based approach to improve the frequency control in hybrid power system

Hao Wang, Guozhou Zhang, Weihao Hu*, Di Cao, Jian Li, Shuwen Xu, Dechao Xu, Zhe Chen

*Kontaktforfatter

Publikation: Bidrag til tidsskriftKonferenceartikel i tidsskriftForskningpeer review

10 Citationer (Scopus)
40 Downloads (Pure)

Abstract

Frequency control over networks is done using the frequency droop control technique which has the simplicity advantage although it allows that, in certain situations, frequency control is not very efficient. Artificial intelligence techniques have been increasingly used, so it is justified to explore their viability in electrical networks. The present work analyzes the use of Artificial Intelligence in networks to improve the frequency droop control. In order to realize this, a deep reinforcement learning (DRL)-based agent is proposed to tune the controller parameters for voltage source converter (VSC) in this paper. The DRL-based agent is trained by numerous hybrid grid operation conditions to lean the optimal control policy, which make it achieve a good adaptability to variety of operation conditions. For the purpose of demonstrating this method, a time-domain simulation model of hybrid power system is built with MATLAB/Simulink to act as test system. The simulation results verify the effectiveness of the proposed method.

OriginalsprogEngelsk
TidsskriftEnergy Reports
Vol/bind6
Udgave nummerSuppl. 8
Sider (fra-til)174-181
Antal sider8
DOI
StatusUdgivet - dec. 2020
Begivenhed7th International Conference on Energy and Environment Research, ICEER 2020 - Virtual, Porto, Portugal
Varighed: 14 sep. 202018 sep. 2020
http://iceer.net/2020.html

Konference

Konference7th International Conference on Energy and Environment Research, ICEER 2020
LokationVirtual
Land/OmrådePortugal
ByPorto
Periode14/09/202018/09/2020
Internetadresse

Bibliografisk note

Publisher Copyright:
© 2020 The Authors

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